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The fracture toughness of graphene during the tearing process

机译:石墨烯在撕裂过程中的断裂韧性

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The fracture toughness of single-crystal graphene and bi-crystal graphene with different misorientation angles is investigated by molecular dynamics simulation. We find that the fracture toughness fluctuates when a crack propagates across the grain boundary. It indicates that the grain boundary affects the fracture toughness during the fracture process. The affected region on the graphene is limited to a small zone around the grain boundary. However, for the complete tearing-failure case, fracture toughness of bi-crystal graphene is approximate to that of single-crystal graphene, which implies that the fracture toughness is not very sensitive to the grain boundary. For comparison, the tensile fracture simulations of the single-crystal graphene and bi-crystal graphene are carried out. The results show that the grain boundaries block the crack propagation and affect fracture toughness significantly in bi-crystal graphene under tensile force. Furthermore, we analyze the fracture of a single C-C bond at the crack tip of single-crystal graphene under tearing load from the atomic view. We find that the fracture toughness of the single C-C bond occupies about half of the fracture toughness for the complete failure of the total single-crystal graphene, and the other half energy distributes in the rest of the graphene.
机译:通过分子动力学模拟研究了不同取向角的单晶石墨烯和双晶石墨烯的断裂韧性。我们发现,当裂纹跨晶界扩展时,断裂韧性会发生波动。这表明晶界影响断裂过程中的断裂韧性。石墨烯上的受影响区域仅限于晶界周围的一个小区域。但是,对于完全撕裂破坏的情况,双晶石墨烯的断裂韧性近似于单晶石墨烯的断裂韧性,这意味着断裂韧性对晶界不是很敏感。为了进行比较,进行了单晶石墨烯和双晶石墨烯的拉伸断裂模拟。结果表明,在拉伸作用下,晶界阻碍了双晶石墨烯的裂纹扩展并显着影响断裂韧性。此外,我们从原子的角度分析了在撕裂载荷下单晶石墨烯的裂纹尖端处单个C-C键的断裂。我们发现,对于整个单晶石墨烯完全失效,单个C-C键的断裂韧性大约占断裂韧性的一半,而另一半能量则分布在其余的石墨烯中。

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